GB2206931A - Electromagnetically reciprocating apparatus - Google Patents

Electromagnetically reciprocating apparatus Download PDF

Info

Publication number
GB2206931A
GB2206931A GB08814371A GB8814371A GB2206931A GB 2206931 A GB2206931 A GB 2206931A GB 08814371 A GB08814371 A GB 08814371A GB 8814371 A GB8814371 A GB 8814371A GB 2206931 A GB2206931 A GB 2206931A
Authority
GB
United Kingdom
Prior art keywords
piston assembly
valve
inner space
electromagnetically
reciprocating apparatus
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB08814371A
Other versions
GB8814371D0 (en
GB2206931B (en
Inventor
Katsuji Kikuchi
Haruki Nakao
Tamotsu Mori
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nitto Kohki Co Ltd
Original Assignee
Nitto Kohki Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Nitto Kohki Co Ltd filed Critical Nitto Kohki Co Ltd
Publication of GB8814371D0 publication Critical patent/GB8814371D0/en
Publication of GB2206931A publication Critical patent/GB2206931A/en
Application granted granted Critical
Publication of GB2206931B publication Critical patent/GB2206931B/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B17/00Pumps characterised by combination with, or adaptation to, specific driving engines or motors
    • F04B17/03Pumps characterised by combination with, or adaptation to, specific driving engines or motors driven by electric motors
    • F04B17/04Pumps characterised by combination with, or adaptation to, specific driving engines or motors driven by electric motors using solenoids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B35/00Piston pumps specially adapted for elastic fluids and characterised by the driving means to their working members, or by combination with, or adaptation to, specific driving engines or motors, not otherwise provided for
    • F04B35/04Piston pumps specially adapted for elastic fluids and characterised by the driving means to their working members, or by combination with, or adaptation to, specific driving engines or motors, not otherwise provided for the means being electric
    • F04B35/045Piston pumps specially adapted for elastic fluids and characterised by the driving means to their working members, or by combination with, or adaptation to, specific driving engines or motors, not otherwise provided for the means being electric using solenoids
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K33/00Motors with reciprocating, oscillating or vibrating magnet, armature or coil system
    • H02K33/02Motors with reciprocating, oscillating or vibrating magnet, armature or coil system with armatures moved one way by energisation of a single coil system and returned by mechanical force, e.g. by springs

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Reciprocating, Oscillating Or Vibrating Motors (AREA)
  • Electromagnetic Pumps, Or The Like (AREA)
  • Compressors, Vaccum Pumps And Other Relevant Systems (AREA)

Description

1 11 2 2 0 6 9 R.
"ELECTROMAGNETICALLY RECIPROCATING APPARATUS" The present invention relates to an electro magnetically reciprocating apparatus which is used as, for example a fluid pump.
Fundamental construction of one example of a conventional electromagnetically reciprocating apparatus, which is used as a fluid pump (compressor, vacuum pump), is shown in Fig. 1. The conventional apparatus comprises: electromagnet 100, which is consisted of iron core 100a and coil 100b and repeats magnetization and demagnetization for one cycle of AC current; piston assembly 102, which includes magnetic material member 102a to be dawn by magnetized electro magnet 100, and front and rear pistons 102b, 102c disposed before and behind magnetic material member 102; front and rear cylinders 104,-106 for supporting front and rear pistons 102bi 102c of piston assembly 102; and a compression elastic member, wherein that is compres sion coil spring 108, which is compressed by piston assembly 102 moved in a forward direction (movement in a rightward direction in Fig. 1) by magnetic action of electromagnet 100 and moves piston assembly 102 in a backward direction (movement in a leftward direction in Fig. 1) by elastic force when electromagnet 102 is demagnetized.
In the electromagnetically reciprocating apparatus of this kind, operation efficiency becomes maximum when 2 - a vibration system having piston assembly 102 and elastic member (coil spring 108) is reciprocated in a resonance state.
More specifically, piston assembly 102 is reciprocated in the resonance state and an amplitude of reciprocating movement thereof is maximum when the following equation (1) is satisfied. That is, maximum operation efficiency of the electromagnetically reciprocating apparatus can be obtained.
is 1 KS + Kf - 2 Tr / m where (1) F: the frequency of the commercial electric power source (the number of pluses of DC power source) M: the mass of piston assembly 102 Kf: the spring constant of a gas sealed in a sealed space 104a formed in front cylinder 104 partitioned by front piston 104 Ks: the spring constant of coil spring 108 com pressed by rear piston 102c In a case that the electromagnetically reciprocat ing apparatus is used in different areas in which the commercial AC current have different frequency Fa, Fb (for example, Fa > Fb) to each other, at first, value of the spring constant (Ks + Kfa) of coil spring 108 and W - 3 a gas in sealed space 104a, and the mass (M) of piston assembly 102 are set up in order to satisfy the following equation (2) and then make piston assembly 102 reciprocate in maximum amplitude of vibration in the area of frequency Fa.
Fa - 1 1, Ks + Kfa... (2) - i 2 Tr / M is where:
Kfa: the spring constant of a gas in sealed space 104a when the frequency is Fa Then, in a case that the electromagnetically reciprocating apparatus, in which the various values are set as disclosed above, is used in the area of another frequency Fb, the following equation (3) is introduced.
Fb > 2 1 TT /- KS + Kfb M (3) where:
Kfb: the spring constant of a gas in sealed space 104a when the frequency is Fb From the equation (3), it becomes clear that piston assembly 102 can not reciprocate in the resonance state because either the spring constant (Ks + Kfb) is too small or the mass (M) of piston assembly 102 is too big.
Therefore, in Japan which is divided into two areas having the frequency of 50 Hz and 60 Hz of the is commercial electric power sources, in order to make the conventional apparatus of the kind obtain the most preferably resonance state in the different frequency areas, the piston weight and the spring constant of coil spring (the elastic member) 108 are changed. This cause troubles that a manufacturing of various kinds of vibra tion systems having resonance frequency which are con sistent with various kinds of frequency of the commercial electric power sources, and an independent storage of various kinds of vibration systems are needed.
The present invention has been made in consideration of the above situation, and has as its object to provide an electromagnetically reciprocating apparatus which can easily adjust the resonance frequency of a vibration system consisted of the piston assembly and the compression elastic member, etc. without changing the piston weight and the spring constant, and can easily adjust the resonance frequency of the vibration system at a place in which the electromagnetically reciprocating apparatus is used.
The fundamental construction of the electromagnetically reciprocating apparatus 10 of this invention for dissolving the above stated problems is shown in Fig. 2. This electromagnetically reciprocating apparatus 10 comprises: electromagnet 12 which is consisted of iron core 12a and coil 12b and repeats magnetization and demagnetization for one cycle of AC current or,for one pulse of DC current; piston assembly 14 which includes magnetic material member 14a to be drawn by magnetized electromagnet 12, and front and rear pistons 14b, 14c disposed before and behind magnetic material member 14a; frond and rear cylinders 16, 18 for supporting front and rear pistons 14b, 14c; and a compression elastic member, wherein that is compression coil spring 20, which is compressed by piston assembly 14 moved in a forward direction (movement in a rightward direction in Fig. 2) by magnetic action of electromagnet 12 and moves piston assembly 14 in a backward direction (movement in a leftward direction in Fig. 2) by elastic force when electromagnet 12 is demagnetized. An air hole 21 is mounted on rear cylinder 18 to communicate a is sealed space partitioned in rear cylinder 18 by rear piston 14c of piston assembly 14 with the outside of rear cylinder 18, and valve means 22 is mounted on air hole 21 to adjust a resonance frequency of the vibration system having piston assembly 14 and compression coil spring 20.
In fluid working chamber 16a which is disposed in front cylinder 16 so as to be expanded and reduced its volume by the reciprocal movement of piston assembly 14, fluid suction valve 16c for sucking fluid into fluid working chamber 16a in a volume expansion process of fluid working chamber 16a, and fluid exhaust valve 16d for exhausting fluid from fluid working'chamber 16a in 6 - a volume reduction process are mounted.
In electromagnetically reciprocating apparatus 10 constructed as described above, the adjustment of opening of valve means 22 causes a sympathetic vibration of piston assembly 14 by the different electric power sources having different frequency.
It is preferable that the valve means is formed on an end wall of a housing the inner space of which communicates with.the atmosphere, one end of the air hole is open to the sealed space of the rear cylinder and the other end is open at the outer end face of end wall of housing, and the inner space of the housing is open on the outer end face of end wall of housing at a position near to the other end of the air hole. It is is also preferable that the valve means comprises a caplike valve casing hermetically mounted on the outer end face of end wall of housing so as to cause an end face opening of the inner space of the valve casing to cover the other end of the air hole and the opening of the inner space of the housing, and a valve body arranged in the inner space of the valve casing so as to be movable between a closed position where communication between the other end of the air hole and the opening of the inner space of the housing through the inner space of the valve casing is interrupted and an open position where communication between the other end of the air hole and the opening of the inner space of the housing z.
- 7 through the inner space of the valve casing is allowed.
The valve means having the structure as described above can be easily assembled in or disassembled from the electromagnetically driven reciprocating apparatus so as to perform repair and inspection.
In the electromagnetically reciprocating apparatus of this invention constructed as described above, it is preferable that the valve body of the valve means is accommodated in the inner space of the valve casing so as to pivot about an axis extending along the axis of the rear cylinder and is movable between the open and closed positions upon pivotal movement thereof, and the valve body includes an operation pin extending from the inner space of the valve casing in a direction along the axis thereof and exposed on an outer surface of the valve casing.
This valve means is more compact and has better operability.
When the electromagnetically reciprocating apparatus of this invention is constructed as described above, it is preferable that the compression elastic member is a compression coil spring arranged in the rear cylinder. when the compression elastic member is arranged as described above, the electromagnetically reciprocating apparatus can be made more compact.
Therefore, an electromagnetically reciprocating compressor or vacuum pump of this kind, which can be used 8 in Japan having two areas in which the frequencies of commercial electric power sources are 50 Hz and 60 Hz, produces a sympathetic vibration of the vibration system by DC current pulse or Ad current, having frequency between 50 Hz and 60 Hz, when the following (1) to (4) steps are practiced in the following order.
(1) The weight (M) of piston assembly 14 and the spring constant (Ks) of coil spring20 are set up to make piston assembly 14 sympathetically vibrate at 5O.Hz (specific frequency).
(2) The volume of sealed space 18a in the rear side is set up to make a gas in sealed space 18a has a spring constant (Kr) which produces sympathetic vibration at 60 Hz (desired frequency).
(3) Air hole 21, having an enough opening area so as not to resist the sympathetic vibration at 50 Hz, is mounted on rear cylinder 18.
(4) Valve means 22 is mounted on air hole 21. After execution of the above steps (1) to (4), the vibration system can sympathetically vibrate either at 50 Hz or at 60 Hz by adjusting the opening of valve means 22.
In the electromagnetically reciprocating apparatus of this invention, the resonance frequency of vibration system can be adjusted by every easy operation. That is, the movement of piston assembly can be adjusted to make a maximum vibration (resonance frequency state), is v - 9 which is preferable in the usage of the apparatus in the areas having different frequency of AC current, by the only adjustment of valve means without the changing of piston weight and the spring constant to make the resonance frequency of vibration system be inconsistent with the frequency of supplied electric current.
Further, the possibility of adjustment described above produces a very superior technical advantages that a fluid pump of high performance is easily gained even if the piston weight and the spring contact have a slight variation.
This invention can be more fully understood from the following detailed description when taken in conjunction with the accompanying drawings, in which:
Fig. 1 is a schematical view showing a fundamental construction of conventional electromagnetically reciprocating apparatus; Fig. 2 is a schematical view showing a fundamental construction of electromagnetically reciprocating apparatus of this invention; Fig. 3 is a schematic longitudinal sectional view of the electromagnetically reciprocating pump according to an embodiment of the present invention, in which a piston assembly of the pump is located at a top dead center; Fig. 4 is a schematic longitudinal sectional view of the electromagnetically reciprocating pump shown in Fig. 3, wherein the piston assembly is located at a bottom dead center; Figs. 5, 6, and 7 are a front view, a longitudinal sectional view, and a rear view, respectively, of a valve casing of valve means mounted on the pump; and Figs. 8, 9, and 10 are a front view, a longitudinal sectional view, and a rear view, respectively, of a valve body of the valve means mounted on the pump.
In Fig. 3, a fluid pump as one embodiment of the electromagnetically reciprocating apparatus according to the inventions is shown. Electromagnetically reciprocating apparatus 10 shown in Fig. 3 comprises: electromagnet 12 which is consisted of iron core 12a and coil 12b and repeats magnetization and demagnetization for one cycle of AC current or for one pulse of DC current; piston assembly 14 which includes magnetic material member 14a to be drawn by magnetized electromagnet 12, and front and rear pistons 14a, 14c disposed before (in the leftward direction in Fig.3) and behind (in the rightward direction in Fig. 3) magnetic material member 14; front and rear cylinders 16, 18 for supporting front and rear pistons 14b, 14c through cylinder liners 16b, 18b; compression coil spring 20 which is compressed by piston assembly 14 drawn by magnetic action of electromagnet 12 to move in forward direction (movement in a rightward direction in Fig. 3) and moves piston assembly 14 in a backward is 1 R Z direction (movement in a leftward direction in Fig. 3) by elastic force when electromagnet 12 is demagnetized; front-side fluid working chamber 16a which is formed by front piston 14b, front cylinder 16, and front cover 24, and repeats expansion and decreasing of its volume by the reciprocal movement of piston assembly 14 to press air and to exhaust the pressed air through a fluid exhaust port not shown; rear-side sealed space 18a which is formed by rear piston 14c and rear cylinder 18, and repeats decreasing and expansion of its volume by the reciprocal movement of piston assembly 14; air opening 21 for communicating rear-side sealed space 18 with an outer space; and valve means 22 for adjusting the degree of air flow between rear-side sealed space 18a and the is outer space through air hole 21. valve body 22a of valve means 22 is guided by valve casing 22b to be pivotable. one end of compression coil spring 20 is supported by a closed end of indented portion 26 formed on the end face of rear piston 14c, and the other end thereof is supported by spring support 28. -Spring support 28 is placed on adjustment screw 32 through ball 30, and adjustment screw 32 is threadably engaged in end wall 34 of rear cylinder 18 to adjust compression strength of compression coil spring 20. Lock nut 38 is threadably fitted on the outer-projected end of adjustment screw 32 through washer 36 to lock adjustment screw 32 on end wall 34 of rear cylindet 18.
A housing of electromagnetically reciprocating apparatus 10 is constructed by front housing member 42 with stepped aperture 40 and rear housing member 48 with aperture 46 having the same diameter as that of largediameter portion 44 of stepped aperture 40 of front housing member 42. Rear housing member 48 is coaxially fixed to front housing member 42 such that aperture 46 is adjacent to large-diameter portion 44 of stepped aperture 40 of front housing member 42.
A small-diameter portion of stepped aperture 40 serves as front cylinder 16 for front piston 14b. The end portion of front cylinder 16 which is far away from largediameter portion 44 is closed by cylinder head member 24 fixed to front housing member 42. A fluid suction valve 16c and fluid exhaust valve 16d both of which are shown in Fig. 2 are mounted on cylinder head member 24. Aperture 46 of rear housing member 48 is opened to atmospheric air through an opening (not shown).
Cylindrical rear cylinder 18 is formed on the end wall of rear housing member 48 so as to be coaxial to the axis of aperture 46 in aperture 46 of rear housing member 48. The end wall of rear housing member 48 constructs end wall 34 of rear cylinder.
Air hole 21 is formed in end wall 34 of rear housing member 48. one end of air hole 21 is open to rear-side sealed space 18a defined between the end face te - 13 of rear piston 14c and end wall 34 of rear housing member 48, and the other end of which is open on the outer end face of end wall 34. Second air hole so is also formed in end wall 34. one end of second air hole 50 is open to the inner space of rear housing member 48 in the radially outward portion than rear cylinder 18. The other end of second air hole 50 is open on the outer end face of end wall 34 at a position near the other end of first air hole 21.
Valve means 22 is formed on the outer end face of end wall 34 to control a flow rate of a fluid between rear-side sealed space 18a of rear cylinder 18 and an inner space (this inner space is communicated with atmospheric air through the above-mentioned opening (not is shown)) of rear housing member 48 through first and second air holes 21 and 50.
Valve casing 22b of valve means 22 is formed to have a capshape which is detachably and hermetically fixed to the outer end face of end wall 34 so as to cover both the openings of first and second-air holes 21 and 50 at the outer end face of end wall 34. Disc-like valve body reception recess 52, as best shown in Figs. 5 and 6, is formed in the inner space of valve casing 22b opposing, as shown in Fig. 3, both the openings of first and second air holes 21 and 50 at the outer end face of end wall 34. valve body 22a having a substantially disc-like shape, as best shown in Figs. 8 to 10, is 1 is fitted in recess 52, as shown in Fig. 3. Fluid flow recess 54 is formed in the lower half on one end face of valve body 22a. operation pin 56 extending in an axial direction of valve body 22a is integrally form ed on the central portion of the other end face of valve body 22a. Operation pin 56 is inserted in through hole 58 (best shown in Figs. 5 to 7) formed at the center of the bottom surface of recess 52 of valve casing 22b and is exposed outside valve casing 22b. As shown in Figs..9 and 10, slot 60 is formed on the exposed end of opera tion pin 56 so as to be fitted with a screwdriver (not shown).
when the screwdriver (not shown) is rotated in one or the other direction after the tip of the screwdriver is engaged with slot 60, valve body 22a is rotated in valve body reception recess 52 of valve casing 22b in one or the other direction. Upon rotation, valve body 22a can move between an open position where fluid flow recess 54 corresponds to first and second air holes 21 and 50 shown in Fig. 3 and a closed position where an upper half (Fig. 8), on which fluid path recess.54 is not formed, on the one end face of valve body 22a corresponds to the first and second air holes 21 and 50.
When valve body 22a is located in the open position, as shown in Fig. 3, rear-side sealed space 18a of rear cylinder 18 communicates with an inner space (this space is communicated with atmospheric air through r - the above-mentioned opening (not shown)) of rear housing member 18 through first and second air holes 21 and 50. However, when valve body 22a is located at the closed position, communication between rear-side sealed space 18a of rear cylinder 18 and the inner space (this inner space is communicated with atmospheric air through the above-mentioned opening (not shown)) of rear housing member 18 through first and second air holes 21 and 50 is inhibited.
Therefor, when apparatus 10 is used in an area in which the frequency of commercial electric power source is 50 Hz, at first, valve body 22a is disposed at the open position to make first air hole 21 open, and then half-wave rectified AC current or DC current pulses is supplied to apparatus 10 to drive it. And, when apparatus 10 is used in an area in which the frequency of commercial electric power source is 60 Hz, at first, valve body 22a is disposed at the closed position to make first air hole 21 close, and then above described AC or DC current is supplied to apparatus 10.
When electromagnet 12 is energized, magnetic material member 14a is drawn in the rightward direction in Fig. 3 to move piston assembly 14 in the forward direction (movement in the rightward direction in Fig. 3), thereby coil spring 20 is compressed, as shown in Fig. 4. At the same time, the volume of fluid working chamber 16a of front cylinder 16 is expanded, is and fluid suction valve 16c shown in Fig. 2 is opened to suck air into fluid working chamber 16a.
Then, when electromagnet 12 is deenergized, piston assembly 14 is moved in the backward direction (movement in the leftward direction in Fig. 4) by elastic force of coil spring 20. At this time, the volume of fluid working chamber 16a is decreased while air in fluid working chamber 16a is compressed. When pressure of air in fluid working chamber 16a reaches at a predetermined value, fluid exhaust valve 16d shown in Fig. 2 is opened to exhaust pressurized air in fluid working chamber 16a.
As described above, owing to repetition of magnetization and demagnetization in electromagnet 12, pressurized fluid is supplied to air consuming source connected to the fluid exhaust port not shown in which fluid exhaust valve 16d is mounted or air is sucked from a pressure reduction system connected to the fluid suction port not shown in which fluid suction valve 16c is mounted.
Even if this electromagnetically driven reciprocating fluid pump is used in different areas in which frequency of commercial electric power sources are different from each other, the pump can reciprocates piston assembly 14 with maximum amplitude (in the sympathetic vibration state) in every areas by adjusting degree of opening of valve member 22a which is mounted to correspond to rear-side sealed space 18a of rear 1 1 cylinder 18.
In the above described explanation, electromagnetically reciprocating apparatus 10 is used in the two areas in which frequency of commercial AC electric power sources are 50 Hz and 60 Hz. However, apparatus 10 may be used in the other area, in which frequency of commercial AC electric power source is between 50 Hz and 60 Hz, by stepless regulation of valve body 22a to adjust the opening of first air hole 21.
18 - claims:
1. An electromagnetically reciprocating apparatus comprising:
an electromagnet which repeats magnetization and demagnetization for one cycle of DC current or for one pulse of DC current; a piston assembly which includes a magnetic material member to be drawn by the electromagnet in a magnetized state,-and front and rear pistons disposed before and behind the magnetic material member; front and rear cylinders for supporting the front and rear pistons of the piston assembly; and a compression elastic member which is compressed by the piston assembly moved in a forward direction by the is magnetic action of the magnetized electromagnet, and moves the piston assembly in a backward direction by a compressed elastic force thereof when the electromagnet is demagnetized; wherein an air hole is mounted on the front cylinder and/or the rear cylinder to communicate a sealed space partitioned in the cylinder or cylinders by the piston assembly with the outside of the cylinder or cylinders, and valve means is mounted on the air hole to adjust a resonance frequency of the vibration system having the piston assembly and the compression elastic member, etc.
2. An electromagnetically reciprocating apparatus according to claim 1, wherein the rear cylinder is formed on an end wall of a housing the inner space of which communicates with the atmosphere, one end of the air hole is open to the sealed space of the rear cylinder and the other end is open at the outer end face of end wall of housing, the inner space of the housing is open on the outer end face of end wall of housing at a position near to the other end of the air hole, and the valve means comprises a cap-like valve casing hermetically mounted on the outer end face of end wall of housing so as to cause an end face opening of the inner space of the valve casing to cover the other end is of the air hole and the opening of the inner space of the housing, and a valve bodyarranged in the inner space of the valve casing so as to be movable between a closed position where communication between the other end of the air hole and the opening of the inner space of the housing through the inner space of the valve casing is interrupted and an open position where communication between the other end of the air hole and the opening of the inner space of the housing through the inner space of the valve casing is allowed.
3. An electromagnetically reciprocating apparatus according to claim 2, wherein the valve body of the valve means is accommodated - in the inner space of the valve casing so as to pivot about an axis extending along the axis of the rear cylinder and is movable between the open and closed positions upon pivotal movement thereof, and the valve body includes an operation pin extending from the inner space of the valve casing in a direction along the axis thereof and exposed on an outer surface of the valve casing.
4. An electromagnetically reciprocating apparatus according to claim 1, wherein the compression elastic member is a compression coil spring arranged in the rear cylinder.
5. An electromagnetically reciprocating apparatus, substantially as hereinbefore described with reference is to Figs. 2 to 10 of the accompanying drawings.
Published 1985 at The Patent. Of'ile.S-.ae House. E-671 High Hc-'Doi,i. Londc.-. WC1R 4TP Fartner copies maybe obtained from. The Patent Office, S-.I.Iez- Brarch. St Mary Cray. Orpington, 7.ent BR5 3RD T-rinted by echrAT-,es ltd, St Mary Cray. Kent. Con. 1'87.
1
GB8814371A 1987-06-17 1988-06-16 Electromagnetically reciprocating apparatus Expired - Lifetime GB2206931B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP1987092058U JPH059508Y2 (en) 1987-06-17 1987-06-17

Publications (3)

Publication Number Publication Date
GB8814371D0 GB8814371D0 (en) 1988-07-20
GB2206931A true GB2206931A (en) 1989-01-18
GB2206931B GB2206931B (en) 1991-09-04

Family

ID=14043890

Family Applications (1)

Application Number Title Priority Date Filing Date
GB8814371A Expired - Lifetime GB2206931B (en) 1987-06-17 1988-06-16 Electromagnetically reciprocating apparatus

Country Status (4)

Country Link
US (1) US4854833A (en)
JP (1) JPH059508Y2 (en)
KR (1) KR910001551B1 (en)
GB (1) GB2206931B (en)

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0509660A1 (en) * 1991-04-16 1992-10-21 Sanden Corporation Free piston-type compressor
WO1994028306A1 (en) * 1993-06-02 1994-12-08 Pegasus Airwave Limited Compressor
GB2293865A (en) * 1993-06-02 1996-04-10 Pegasus Airwave Ltd Compressor
WO2000079671A1 (en) * 1999-06-21 2000-12-28 Fisher & Paykel Limited Linear motor
US6759755B2 (en) 2000-01-28 2004-07-06 Clavis Technology As Energy converter
US8231355B2 (en) 2003-09-02 2012-07-31 Fisher & Paykel Appliances Limtied Linear motor controller improvements

Families Citing this family (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0511355Y2 (en) * 1990-05-09 1993-03-19
JP2520341Y2 (en) * 1991-02-12 1996-12-18 日東工器株式会社 Electromagnetic reciprocating pump
GB0005825D0 (en) * 2000-03-11 2000-05-03 Archfact Ltd Compressor spring locator
IT1318801B1 (en) 2000-08-31 2003-09-10 Nuovo Pignone Spa DEVICE FOR CONTINUOUS ADJUSTMENT OF THE FLOW RATE OF GAS TREATED AN ALTERNATIVE COMPRESSOR.
JP4149147B2 (en) * 2001-07-19 2008-09-10 松下電器産業株式会社 Linear compressor
KR100425844B1 (en) * 2001-11-08 2004-04-03 주식회사 엘지이아이 Apparatus for controlling frequency of moving mass in reciprocating compressor
NZ515578A (en) * 2001-11-20 2004-03-26 Fisher & Paykel Appliances Ltd Reduction of power to free piston linear motor to reduce piston overshoot
JP4195389B2 (en) * 2001-12-10 2008-12-10 エルジー エレクトロニクス インコーポレイティド Reciprocating compressor
BR0301492A (en) * 2003-04-23 2004-12-07 Brasil Compressores Sa Linear compressor resonance frequency adjustment system
JP4520834B2 (en) * 2004-11-26 2010-08-11 日東工器株式会社 Electromagnetic reciprocating fluid device
JP4603433B2 (en) * 2005-07-11 2010-12-22 日東工器株式会社 Electromagnetic reciprocating fluid device
KR100819609B1 (en) * 2006-12-08 2008-04-04 엘지전자 주식회사 Linear compressor
BRPI1000181B1 (en) * 2010-01-05 2020-07-28 Embraco Indústria De Compressores E Soluções E Refrigeração Ltda resonant spring mounting arrangement on a linear motor compressor
CN101964577A (en) * 2010-07-28 2011-02-02 李扬德 Electromagnetic field engine
US9685847B2 (en) * 2014-01-31 2017-06-20 Haier Us Appliance Solutions, Inc. Linear motor with electromagnetically actuated spring mover
ES1123905Y (en) * 2014-08-19 2015-01-23 Teylor Intelligent Processes Sl Empresa Magnetic system for waterproof chamber pump
CN110360365B (en) * 2019-06-13 2021-12-24 广东恒精机械有限公司 Low-energy-consumption high-safety electromagnetic air supply and exhaust device
CN115387614B (en) * 2022-08-30 2023-08-08 上海建工四建集团有限公司 Telescopic pneumatic vibrator, vibrating device and use method of vibrating device

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR1472032A (en) * 1965-03-12 1967-03-10 Reciprocating drive machine with electromagnetic control
US3542495A (en) * 1965-09-24 1970-11-24 Maurice Barthalon Reciprocating electric motor
US4261689A (en) * 1979-02-08 1981-04-14 Man Design Co., Ltd. Electro-magnetic fluid pump
JPS63193778U (en) * 1987-06-03 1988-12-13

Cited By (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0509660A1 (en) * 1991-04-16 1992-10-21 Sanden Corporation Free piston-type compressor
EP0770779A3 (en) * 1993-06-02 1997-05-21 Pegasus Airwave Limited Compressor
EP0770779A2 (en) 1993-06-02 1997-05-02 Pegasus Airwave Limited Compressor
GB2293865A (en) * 1993-06-02 1996-04-10 Pegasus Airwave Ltd Compressor
GB2294297A (en) * 1993-06-02 1996-04-24 Pegasus Airwave Ltd Compressor
GB2294297B (en) * 1993-06-02 1997-04-23 Pegasus Airwave Ltd Compressor
GB2293865B (en) * 1993-06-02 1997-04-23 Pegasus Airwave Ltd Compressor
WO1994028308A1 (en) * 1993-06-02 1994-12-08 Pegasus Airwave Limited Compressor
WO1994028306A1 (en) * 1993-06-02 1994-12-08 Pegasus Airwave Limited Compressor
WO2000079671A1 (en) * 1999-06-21 2000-12-28 Fisher & Paykel Limited Linear motor
EP1188221A1 (en) * 1999-06-21 2002-03-20 Fischer & Paykel Limited Linear motor
EP1188221A4 (en) * 1999-06-21 2003-09-24 Fisher & Paykel Linear motor
EP1487091A2 (en) * 1999-06-21 2004-12-15 Fisher & Paykel Appliances Limited Linear motor
EP1487091A3 (en) * 1999-06-21 2005-03-23 Fisher & Paykel Appliances Limited Linear motor
US6759755B2 (en) 2000-01-28 2004-07-06 Clavis Technology As Energy converter
US8231355B2 (en) 2003-09-02 2012-07-31 Fisher & Paykel Appliances Limtied Linear motor controller improvements

Also Published As

Publication number Publication date
GB8814371D0 (en) 1988-07-20
GB2206931B (en) 1991-09-04
US4854833A (en) 1989-08-08
JPH059508Y2 (en) 1993-03-09
KR910001551B1 (en) 1991-03-15
JPS63200682U (en) 1988-12-23
KR890000789A (en) 1989-03-16

Similar Documents

Publication Publication Date Title
GB2206931A (en) Electromagnetically reciprocating apparatus
US6759755B2 (en) Energy converter
US6676388B2 (en) Gas compression apparatus for reciprocating compressor
KR100480086B1 (en) Suction loss reduction structure of linear compressor
US20050142007A1 (en) Apparatus for preventing abrasion in reciprocal compressor
US20020122732A1 (en) Stator supporting apparatus for reciprocating compressor
US7491038B2 (en) Reciprocating compressor
US4781546A (en) Linear resonant reciprocating machines
US5055011A (en) Electromagnetic type reciprocating pump
KR100394243B1 (en) Apparatus for controlling frequency of moving mass in reciprocating compressor
US20050034926A1 (en) Lubricating oil supply apparatus of reciprocating compressor
JP2001251836A (en) Drive with linear motor
JPH10115473A (en) Linear compressor
KR100498317B1 (en) Structure for protecting dead volum of reciprocating compressor
KR200142465Y1 (en) A linear motor
JP2001123950A (en) Linear compressor
KR100414113B1 (en) Recyprocating compressor
KR100498320B1 (en) Compression force calibration apparatus for reciprocating compressor
KR100425844B1 (en) Apparatus for controlling frequency of moving mass in reciprocating compressor
KR20030042816A (en) Structure for compressing gas in reciprocating compressor
JPH1037856A (en) Linear compressor
KR200145367Y1 (en) Linear compressor
KR20030042815A (en) Apparatus for supporting piston in reciprocating compressor
KR20020090014A (en) Apparatus for controlling piston position in reciprocating compressor
JPH02218874A (en) Shaft rotating fluid compression device

Legal Events

Date Code Title Description
PCNP Patent ceased through non-payment of renewal fee

Effective date: 20020616